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A procedure for identifying master regulators in conjunction with network screening and inference

机译:结合网络筛选和推理来识别主调节器的过程

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We developed a procedure for indentifying transcriptional master regulators (MRs) related to special biological phenomena, such as diseases, in conjunction with network screening and inference. Network screening is a system for detecting activated transcriptional regulatory networks under particular conditions, based on the estimation of the graph structure consistency with the measured data. Since the network screening utilizes the known transcriptional factor (TF)-gene relationships as the experimental evidence for the molecular relationships, its performance depends on the ensemble of known TF networks used for its analysis. To compensate for its restrictions, a network inference method, the path consistency algorithm, is concomitantly utilized to identify MRs. The performance is illustrated by means of the known MRs in brain tumors that were computationally inferred and experimentally verified. As a result, the present procedure worked well for identifying MRs, in comparison to the previous computational selection for experimental verification.
机译:我们结合网络筛选和推理,开发了一种程序来识别与特殊生物现象(例如疾病)有关的转录主调节子(MR)。网络筛选是一种系统,用于根据特定图结构与测量数据的一致性,在特定条件下检测激活的转录调控网络。由于网络筛选利用已知的转录因子(TF)-基因关系作为分子关系的实验证据,因此其性能取决于用于其分析的已知TF网络的集合。为了补偿其限制,同时使用网络推理方法(路径一致性算法)来识别MR。该性能通过已知的脑肿瘤中的MR进行了说明,这些MR经过计算推断和实验验证。结果,与先前用于实验验证的计算选择相比,本程序在识别MR方面效果很好。

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